Python将列表作为参数传递
问题描述
如果我要运行这段代码:
If i were to run this code:
def function(y):
y.append('yes')
return y
example = list()
function(example)
print(example)
为什么即使我没有直接更改变量example",它也会返回 ['yes'],以及如何修改代码以使example"不受函数影响?
Why would it return ['yes'] even though i am not directly changing the variable 'example', and how could I modify the code so that 'example' is not effected by the function?
解决方案
Python 中的一切都是参考.如果您希望避免这种行为,您必须使用 list() 创建原始副本的新副本.如果列表包含更多引用,您需要使用 deepcopy()
Everything is a reference in Python. If you wish to avoid that behavior you would have to create a new copy of the original with list(). If the list contains more references, you'd need to use deepcopy()
def modify(l):
l.append('HI')
return l
def preserve(l):
t = list(l)
t.append('HI')
return t
example = list()
modify(example)
print(example)
example = list()
preserve(example)
print(example)
输出
['HI']
[]
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